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Blind detection of image splicing based on image quality metrics and moment features
Zhen ZHANG Jiquan Kang Xijian Ping Yuan Ren
Journal of Computer Applications   
Abstract1763)      PDF (759KB)(1857)       Save
Image splicing is a technique commonly used in image tampering. To implement image splicing blind detection,a new splicing detection scheme was proposed. Image splicing detection could be regarded as a two-class pattern recognition problem and the model was established based on moment features and some Image Quality Metrics (IQMs) extracted from the given test image. This model could measure statistical differences between original image and spliced image. Kernel-based Support Vector Machine (SVM) was chosen as a classifier to train and test the given images. Experimental results demonstrate that this new splicing detection scheme has some advantages of high-accuracy and wide-application.
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